TECHNICAL FIELD
[0001] This application relates to the field of battery technologies, and in particular,
to an inspection method and inspection apparatus for wound cell.
BACKGROUND
[0002] During charging and discharging of a lithium battery, intercalation and extraction
of lithium ions are repeated between a cathode electrode plate and an anode electrode
plate. If the anode electrode plate is not capable of intercalation of all lithium
ions extracted from the cathode electrode plate, the precipitated lithium ions accumulate,
affecting the safety of a lithium battery product. Therefore, there must be a particular
amount of misalignment between the cathode electrode plate and the anode electrode
plate of a cell of the lithium battery, so that the cathode electrode plate is within
a covering range of the anode electrode plate.
[0003] At present, for amounts of misalignment between the cathode electrode plate and the
anode electrode plate of the wound cell, a charge coupled device (CCD) camera is generally
used in a winding process of producing the wound cell to measure the amounts of misalignment
between the cathode electrode plate and the anode electrode plate layer by layer.
However, in this inspection method, it is likely to lose focus in a certain range
near a winding starting position and a winding terminating position and thus the amount
of misalignment of the wound cell cannot be measured accurately.
SUMMARY
[0004] This application provides an inspection method and inspection apparatus for wound
cell, capable of accurately measuring amounts of misalignment between a cathode electrode
plate and an anode electrode plate that are adjacent in a wound cell.
[0005] According to a first aspect, an inspection method for wound cell is provided, including:
obtaining an image of a corner region of the wound cell, where the image of the corner
region includes an image of a cathode electrode plate at N layers of the corner region
of the wound cell and an anode electrode plate at the N layers, N being a positive
integer; and determining, based on the image of the corner region, amounts of misalignment
between the cathode electrode plate and the anode electrode plate that are adjacent
in the wound cell.
[0006] In the inspection method for wound cell provided in an embodiment of this application,
amounts of misalignment in the wound cell can be accurately determined by using the
image of the corner region of the wound cell, thereby preventing cell products with
a nonconforming amount of misalignment from entering the market and ensuring the quality
of cell products.
[0007] In a possible implementation, the image of the corner region is obtained by using
a micro-focus X-ray source to emit X-rays that penetrate the corner region for imaging,
where a direction of the X-rays is perpendicular to a direction of a winding axis
of the wound cell.
[0008] In the inspection scheme for wound cell provided in an embodiment of this application,
the image of the corner region can be quickly and accurately obtained by using a micro-focus
X-ray source to emit X-rays that penetrate the corner region of the wound cell for
imaging, so that the amounts of misalignment in the wound cell can be quickly and
accurately determined, improving the inspection efficiency and ensuring the quality
of cell products.
[0009] In a possible implementation, N is a total number of layers of the cathode electrode
plate and anode electrode plate of the wound cell in the corner region.
[0010] In the inspection scheme for wound cell provided in an embodiment of this application,
the image of the corner region including all layers of the cathode electrode plate
and anode electrode plate can be obtained by using the micro-focus X-ray source to
emit X-rays that penetrate the corner region of the wound cell for imaging, so that
amounts of misalignment can be accurately measured for the cathode electrode plate
and the anode electrode plates of the wound cell that are adjacent at all layers,
preventing cell products with a nonconforming amount of misalignment from entering
the market and ensuring the quality of cell products.
[0011] In a possible implementation, the determining, based on the image of the corner region,
amounts of misalignment between the cathode electrode plate and the anode electrode
plate that are adjacent in the wound cell includes: determining first endpoints on
a first plane for the cathode electrode plate at each of the N layers of the corner
region and second endpoints on the first plane for the anode electrode plate at each
of the N layers in the image of the corner region, where the first plane is a plane
that the winding axis is located on and that is perpendicular to the direction of
the X-rays; and determining, based on the first endpoints and the second endpoints,
amounts of misalignment between the cathode electrode plate and the anode electrode
plate that are adjacent in the wound cell.
[0012] In the inspection scheme for wound cell provided in an embodiment of this application,
when the X-ray penetrates the corner region for imaging, the grayscale of the anode
electrode plate and the cathode electrode plate in the two-dimensional image of the
corner region on the first plane that the winding axis of the wound cell is located
on and that is perpendicular to the ray direction is quite different from that in
other regions, which is easy to identify and differentiate. Therefore, with the endpoints
on the first plane for layers of the cathode electrode plate and anode electrode plate
in the wound cell, the amounts of misalignment between the cathode electrode plate
and the anode electrode plate that are adjacent can be more clearly and accurately
determined.
[0013] In a possible implementation, the determining first endpoints on a first plane for
the cathode electrode plate at each of the N layers of the corner region and second
endpoints on the first plane for the anode electrode plate at each of the N layers
in the image of the corner region includes: using a neural network model to determine
the first endpoints and the second endpoints, where the neural network model is obtained
by training using a plurality of marked wound cell images, and the plurality of marked
wound cell images include information about marked endpoints on the first plane for
the cathode electrode plate and marked endpoints on the first plane for the anode
electrode plate.
[0014] In the inspection scheme for wound cell provided in an embodiment of this application,
the wound cell images are marked, and then the neural network model trained using
the marked wound cell images is used so that the endpoints for the cathode electrode
plate and the anode electrode plate can be accurately and quickly identified.
[0015] In a possible implementation, before the determining, based on the image of the corner
region, amounts of misalignment between the cathode electrode plate and the anode
electrode plate that are adj acent in the wound cell, the method further includes
performing image enhancement on the image of the corner region.
[0016] In the inspection scheme for wound cell provided in an embodiment of this application,
the visual effect of the image can be improved by performing image enhancement on
the image of the corner region, for example, by increasing image definition, so that
the amount of misalignment can be accurately measured and manual re-inspection can
be conveniently performed by operators on the production line.
[0017] In a possible implementation, the performing image enhancement on the image of the
corner region includes increasing contrast of the image of the corner region to highlight
pixels on the first plane for the cathode electrode plate at each of the N layers
and pixels on the first plane for the anode electrode plate at each of the N layers.
[0018] In the inspection scheme for wound cell provided in an embodiment of this application,
the pixels on the first plane for layers of the cathode electrode plate and anode
electrode plate can be highlighted by increasing the contrast of the image of the
corner region, thereby facilitating accurate identification of the endpoints for layers
of the cathode electrode plate and anode electrode plate and improving the accuracy
in measuring amounts of misalignment.
[0019] In a possible implementation, the performing image enhancement on the image of the
corner region further includes using a first grayscale value to replace a grayscale
value for a first region and using a second grayscale value to replace grayscale values
for other regions in the image of the corner region except the first region, where
the first region includes a region in which pixels on the first plane for the anode
electrode plate at each of the N layers and pixels on the first plane for the cathode
electrode plate at each of the N layers are located.
[0020] In the inspection scheme for wound cell provided in an embodiment of this application,
the first grayscale value can be used to replace the grayscale values on the first
plane for layers of the anode electrode plate and the cathode electrode plate, and
the second grayscale value can be used to replace grayscale values for other regions
in the image of the corner region. In this way, only the images of the cathode electrode
plate and the anode electrode plate on the first plane can be clearly highlighted
in the enhanced image of the corner region, which is convenient for identifying the
first endpoints for the cathode electrode plate and the second endpoints for the anode
electrode plate so that the amounts of misalignment can be accurately measured.
[0021] In a possible implementation, before obtaining an image of a corner region of the
wound cell, the method further includes: obtaining a plurality of initial image frames
of the corner region continuously acquired; and performing average denoising on the
plurality of initial image frames of the corner region to obtain the image of the
corner region.
[0022] In the inspection scheme for wound cell provided in an embodiment of this application,
parallel denoising is performed on the plurality of initial image frames of the corner
region continuously acquired so that noises caused by an imaging device and external
environments are suppressed, improving the quality of the image of the corner region.
[0023] In a possible implementation, a control power of the micro-focus X-ray source is
positively related to the thickness of the corner region.
[0024] In the inspection scheme for wound cell provided in an embodiment of this application,
corner regions with different thicknesses can be imaged by adjusting the control power
of the micro-focus X-ray source. A greater control power of the micro-focus X-ray
source can be used for a thicker corner region of the wound cell, so that the image
of cathode electrode plates and anode electrode plates that are adjacent in corner
regions with different thicknesses can be obtained by adjusting the control power
of the micro-focus X-ray source.
[0025] In a possible implementation, the corner region includes four corner regions of the
wound cell.
[0026] In the inspection scheme for wound cell provided in an embodiment of this application,
the accuracy in measuring amounts of misalignment in the wound cell can be improved
by measuring amounts of misalignment between the cathode electrode plate and the anode
electrode plate that are adjacent in four corner regions of the wound cell.
[0027] In a possible implementation, the method further includes: determining a minimum
amount of misalignment between the cathode electrode plate and the anode electrode
plate that are adjacent in the wound cell; determining that the wound cell is a good
product under the condition that the minimum amount of misalignment is within a preset
range; and determining that the wound cell is a defective product under the condition
that the minimum amount of misalignment is beyond the preset range.
[0028] In the inspection scheme for wound cell provided in an embodiment of this application,
the inspection efficiency can be improved by using a minimum one of all amounts of
misalignment to determine whether the wound cell is a good product.
[0029] According to a second aspect, an inspection apparatus for wound cell is provided,
including: an obtaining unit, configured to obtain an image of a corner region of
the wound cell, where the image of the corner region includes an image of a cathode
electrode plate at N layers of the corner region of the wound cell and an anode electrode
plate at the N layers, N being a positive integer; and a control unit, configured
to determine, based on the image of the corner region, amounts of misalignment between
the cathode electrode plate and the anode electrode plate that are adjacent in the
wound cell.
[0030] In a possible implementation, the image of the corner region is obtained by using
a micro-focus X-ray source to emit X-rays that penetrate the corner region for imaging,
where a direction of the X-rays is perpendicular to a direction of a winding axis
of the wound cell.
[0031] In a possible implementation, N is a total number of layers of the cathode electrode
plate and anode electrode plate of the wound cell in the corner region.
[0032] In a possible implementation, the control unit is configured to: determine first
endpoints on a first plane for the cathode electrode plate at each of the N layers
of the corner region and second endpoints on the first plane for the anode electrode
plate at each of the N layers in the image of the corner region, where the first plane
is a plane that the winding axis is located on and that is perpendicular to the direction
of the X-rays; and determine, based on the first endpoints and the second endpoints,
amounts of misalignment between the cathode electrode plate and the anode electrode
plate that are adjacent in the wound cell.
[0033] In a possible implementation, the control unit is configured to use a neural network
model to determine the first endpoints and the second endpoints, where the neural
network model is obtained by training using a plurality of marked wound cell images,
and the plurality of marked wound cell images include information about marked endpoints
on the first plane for the cathode electrode plate and marked endpoints on the first
plane for the marked anode electrode plate.
[0034] In a possible implementation, the control unit is further configured to perform image
enhancement on the image of the corner region.
[0035] In a possible implementation, the control unit is configured to increase contrast
of the image of the corner region to highlight pixels on the first plane for the cathode
electrode plate at each of the N layers and pixels on the first plane for the anode
electrode plate at each of the N layers.
[0036] In a possible implementation, the control unit is configured to use a first grayscale
value to replace a grayscale value for a first region and use a second grayscale value
to replace grayscale values for other regions in the image of the corner region except
the first region, where the first region includes a region in which pixels on the
first plane for the anode electrode plate at each of the N layers and pixels on the
first plane for the cathode electrode plate at each of the N layers are located.
[0037] In a possible implementation, the obtaining unit is configured to: obtain a plurality
of initial image frames of the corner region continuously acquired; and perform average
denoising on the plurality of initial image frames of the corner region to obtain
the image of the corner region.
[0038] In a possible implementation, a control power of the micro-focus X-ray source is
positively related to the thickness of the corner region.
[0039] In a possible implementation, the corner region includes four corner regions of the
wound cell.
[0040] In a possible implementation, the control unit is further configured to: determine
a minimum amount of misalignment between the cathode electrode plate and the anode
electrode plate that are adjacent in the wound cell; determine that the wound cell
is a good product under the condition that the minimum amount of misalignment is within
a preset range; and determine that the wound cell is a defective product under the
condition that the minimum amount of misalignment is beyond the preset range.
[0041] According to a third aspect, an inspection apparatus for wound cell is provided.
The inspection apparatus includes a memory and a processor, where the memory is configured
to store instructions, and the processor is configured to read the instructions and
perform, according to the instructions, the method according to any one of the first
aspect and the possible implementations of the first aspect.
[0042] According to a fourth aspect, a computer-readable storage medium is provided. The
computer-readable storage medium is configured to store a computer program, where
the computer program enables a computer to perform the method according to any one
of the first aspect and the possible implementations of the first aspect.
[0043] According to a fifth aspect, a computer program product is provided. The computer
program product includes computer program instructions, where the computer program
instructions enable a computer to perform the method according to any one of the first
aspect and the possible implementations of the first aspect.
[0044] According to a sixth aspect, a chip is provided. The chip includes a processor configured
to call and run a computer program from a memory, so that a device on which the chip
is installed performs the method according to any one of the first aspect and the
possible implementations of the first aspect.
[0045] According to a seventh aspect, a computer program is provided. The computer program
enables a computer to perform the method according to any one of the first aspect
and the possible implementations of the first aspect.
BRIEF DESCRIPTION OF DRAWINGS
[0046] To describe the technical solutions in the embodiments of this application more clearly,
the following briefly describes the accompanying drawings required for describing
the embodiments of this application. It will be apparent that the accompanying drawings
in the following description show merely some embodiments of this application, and
persons of ordinary skill in the art may still derive other drawings from the accompanying
drawings without creative efforts.
FIG. 1 is a schematic architectural diagram of an inspection system for wound cell
according to an embodiment of this application.
FIG. 2 is a schematic flowchart of an inspection method for wound cell according to
an embodiment of this application.
FIG. 3 is a schematic diagram of a partial structure of a wound cell according to
an embodiment of this application.
FIG. 4 is an image of a corner region according to an embodiment of this application.
FIG. 5 is a schematic flowchart of an inspection method for wound cell according to
an embodiment of this application.
FIG. 6 is a schematic flowchart of an inspection method for wound cell according to
an embodiment of this application.
FIG. 7 is an image of a corner region after image enhancement according to an embodiment
of this application.
FIG. 8 is a schematic flowchart of an inspection method for wound cell according to
an embodiment of this application.
FIG. 9 is a schematic block diagram of an inspection apparatus for wound cell according
to an embodiment of this application.
FIG. 10 is a schematic block diagram of an inspection apparatus for wound cell according
to an embodiment of this application.
DESCRIPTION OF EMBODIMENTS
[0047] The following further describes the implementations of this application in detail
with reference to the accompanying drawings and embodiments. The detailed description
and accompanying drawings of the following embodiments are intended to illustrate
the principle of this application, but are not intended to limit the scope of this
application. This application is not limited to the embodiments described herein.
[0048] In the descriptions of this application, it should be noted that, unless otherwise
stated, "plurality" means two or more; and the orientations or positional relationships
indicated by the terms "inside", "outside", and the like are merely intended to help
the descriptions of this application and simplify the descriptions other than indicate
or imply that the apparatuses or components must have specific orientations, or be
constructed and manipulated with specific orientations, and therefore shall not be
construed as limitations on this application. In addition, the terms "first" and "second"
are merely intended for a purpose of description, and shall not be understood as an
indication or implication of relative importance. "Perpendicular" means being perpendicular
with an allowable range of error other than being strictly perpendicular.
[0049] The orientation terms appearing in the following description all are directions shown
in the figures, and do not limit the specific structure of the application. In the
descriptions of this application, it should be further noted that unless otherwise
specified and defined explicitly, the term "connect", should be understood in its
general senses. For example, the term may be a fixed connection, a detachable connection,
or an integrated connection, or may be a direct connection, or an indirect connection
through an intermediate medium. Persons of ordinary skill in the art can understand
specific meanings of the term in this application based on specific situations.
[0050] With continuous development of new energy technology, the safety of new energy products
has gradually become the focus of major manufacturers and consumer groups. Major new
energy product manufacturers have implemented stricter control over defects in the
product manufacturing process to ensure the safety of products entering the market.
[0051] During charging and discharging of a lithium battery, intercalation and extraction
of lithium ions are repeated between a cathode electrode plate and an anode electrode
plate. If the anode electrode plate is not capable of intercalation of all lithium
ions extracted from the cathode electrode plate, the precipitated lithium ions accumulate,
affecting the safety of a lithium battery product. Therefore, there must be a particular
amount of misalignment between the cathode electrode plate and the anode electrode
plate of a cell of the lithium battery, so that the cathode electrode plate is within
a covering range of the anode electrode plate.
[0052] At present, a CCD camera is generally used in a winding process of producing the
wound cell to measure the amounts of misalignment between the cathode electrode plate
and the anode electrode plate layer by layer. However, in this inspection method,
it is likely to lose focus in a certain range near a winding starting position and
a winding terminating position and thus the amount of misalignment of the wound cell
cannot be measured accurately.
[0053] In view of this, an embodiment of this application provides an inspection method
for wound cell. The inspection method includes: obtaining an image of a corner region
of the wound cell, where the image of the corner region includes an image of a cathode
electrode plate at N layers of the corner region of the wound cell and an anode electrode
plate at the N layers, N being a positive integer; and determining, based on the image
of the corner region, amounts of misalignment between the cathode electrode plate
and the anode electrode plate that are adjacent in the wound cell.
[0054] In the inspection scheme for wound cell provided in this embodiment of this application,
amounts of misalignment between the cathode electrode plate and the anode electrode
plate that are adjacent in the wound cell can be accurately determined by using the
image of the corner region of the wound cell, thereby preventing wound cell products
with nonconforming misalignment from entering the market and ensuring the quality
of cell products.
[0055] FIG. 1 is a schematic architectural diagram of an inspection system for wound cell
according to an embodiment of this application.
[0056] The inspection system for wound cell may include a micro-focus X-ray source module
110, an image obtaining module 120, an image processing and analysis module 130, and
a site for inspection 140.
[0057] The micro-focus X-ray source module 110 may generate and emit X-rays at a specific
emission angle. X-rays penetrating an object under inspection, such as a wound cell,
on the site for inspection 140 are absorbed by the object under inspection and attenuated,
and substances with different densities, thicknesses, and materials absorb the X-rays
differently.
[0058] The image obtaining module 120 may receive X-rays of different intensities after
penetration of the object under inspection, generate electrical signals proportional
to the intensities of the X-rays, and present the electrical signals in a form of
grayscale images, thereby obtaining an image reflecting structure information of the
object under inspection. In this embodiment of this application, the image obtaining
module 120 may obtain an image of a corner region of a wound cell.
[0059] Optionally, in this embodiment of this application, the image obtaining module 120
may include a flat panel detector and a display.
[0060] The image processing and analysis module 130 may process and analyze the image obtained
by the image obtaining module 120. In this embodiment of this application, the image
processing and analysis module 130 may determine, based on the image of the corner
region, amounts of misalignment between the cathode electrode plate and the anode
electrode plate that are adjacent in the wound cell.
[0061] Optionally, in this embodiment of this application, the inspection system for wound
cell may include four micro-focus X-ray source modules 110, four image obtaining modules
120 and four sites for inspection 140. In this way, continuous inspection can be performed
on four corner regions of the wound cell, improving the inspection efficiency.
[0062] Optionally, in this embodiment of this application, the inspection system for wound
cell may further include a conveying track for the object under inspection to move
thereon. For example, the object under inspection may be moved from a placement site
to the site for inspection through the conveying track, or from one site for inspection
to a next site for inspection.
[0063] Modules in the inspection system for wound cell may be implemented in a form of software
invoked by a processor. For example, the modules in the inspection system include
a processor, the processor is connected to a memory, and instructions are stored in
the memory. The processor invokes the instructions stored in the memory to implement
any of the foregoing methods or to implement functions of units of the apparatus,
where the processor is, for example, a general-purpose processor, such as a central
processing unit (CPU) or a microprocessor, and the memory is a memory internal or
external to the apparatus. Alternatively, the modules of the inspection system may
be implemented in a form of hardware circuits, and the functions of some or all units
may be implemented through the design of the hardware circuits. The hardware circuits
may be understood as one or more processors. For example, in one implementation, the
hardware circuits are application-specific integrated circuits (ASIC) and implement
the functions of some or all of the foregoing units through the design of logical
relationships between the elements in the circuit. For another example, in another
implementation, the hardware circuits may be implemented by programmable logic devices
(PLD). The field programmable gate array (FPGA) is used as an example, may include
a large number of logic gate circuits and implement the functions of some or all of
the foregoing units through connection relationships among logic gate circuits configured
by a configuration file. The foregoing modules of the inspection system may all be
implemented in a form of software invoked by a processor or in a form of hardware
circuits, or partly in a form of software invoked by the processor while the rest
are implemented in a form of hardware circuits.
[0064] Optionally, the foregoing components are just an example. In practical applications,
the foregoing components may be added or removed according to actual needs. FIG. 1
shall not be construed as a limitation on the embodiments of this application.
[0065] FIG. 2 is a schematic flowchart of an inspection method for wound cell according
to an embodiment of this application.
[0066] 210. Obtain an image of a corner region of a wound cell.
[0067] The image of the corner region includes an image of a cathode electrode plate at
N layers of the corner region of the wound cell and an anode electrode plate at the
N layers, N being a positive integer.
[0068] FIG. 3 is a schematic diagram of a partial structure of a wound cell according to
an embodiment of this application. The wound cell includes a cathode electrode plate
and an anode electrode plate, and a width of the cathode electrode plate may be different
from a width of the anode electrode plate in a width direction of the wound cell.
For example, the width of the anode electrode plate is greater than the width of the
cathode electrode plate in the wound cell of a lithium battery, so that the anode
electrode plate covers a greater range on both sides of the width direction at each
layer of the wound cell than the cathode electrode plate, thereby avoiding product
safety problems caused by lithium precipitation.
[0069] As shown in FIG. 3, the wound cell may include corner regions. An image of a corner
region of the wound cell can be obtained by imaging the corner region of the wound
cell.
[0070] FIG. 4 is an image of a corner region of a wound cell according to an embodiment
of this application. As shown in FIG. 4, the image of the corner region includes an
image of a cathode electrode plate and an anode electrode plate at a plurality of
layers of the corner region of the wound cell. Because great differences in grayscale
or color exist between the anode electrode plate and the cathode electrode plate in
the image of the corner region, it is possible to identify which electrode plates
are the anode electrode plates or which electrode plates are the cathode electrode
plates in the image of the corner region based on the grayscale or color. It can be
seen from FIG. 4 that the width of the anode electrode plate in the wound cell is
greater than that of the cathode electrode plate, that is, there is a certain amount
of misalignment between the anode electrode plate and the cathode electrode plate.
[0071] 220. Determine, based on the image of the corner region, amounts of misalignment
between a cathode electrode plate and an anode electrode plate that are adjacent in
the wound cell.
[0072] In this embodiment, the amount of misalignment between the cathode electrode plate
and the anode electrode plate that are adjacent may be an amount of misalignment between
the cathode electrode plate at a particular layer and the anode electrode plate adjacent
to the cathode electrode plate at the layer. For example, for the Kth layer (not the
innermost layer), an amount of misalignment between the cathode electrode plate at
the Kth layer and the anode electrode plate at the Kth layer and an amount of misalignment
between the cathode electrode plate at the Kth layer and the anode electrode plate
at the (K-1)th layer may be used to determine an amount of misalignment amount between
the cathode electrode plate and the anode electrode plate that are adjacent. For the
innermost layer, an amount of misalignment between the cathode electrode plate at
the innermost layer and the anode electrode plate at the innermost layer may be used
to determine an amount of misalignment amount between the cathode electrode plate
and the anode electrode plate that are adjacent.
[0073] Optionally, in this embodiment, an amount of misalignment between adjacent cathode
electrode plates may be an amount of misalignment between a cathode electrode plate
at a layer and an anode electrode plate at the layer.
[0074] In the inspection scheme for wound cell provided in this embodiment of this application,
amounts of misalignment between the cathode electrode plate and the anode electrode
plate that are adjacent in the wound cell can be accurately determined by using the
image of the corner region obtained by imaging the corner region of the wound cell,
thereby preventing cell products with a nonconforming amount of misalignment from
entering the market and ensuring the quality of cells.
[0075] Optionally, in this embodiment of this application, the image of the corner region
is obtained by using a micro-focus X-ray source to emit X-rays that penetrate the
corner region for imaging, where a direction of the X-rays is perpendicular to a direction
of a winding axis of the wound cell.
[0076] As shown in FIG. 3, the X-rays emitted by the micro-focus X-ray source in the direction
perpendicular to the winding axis of the wound cell penetrate the corner region of
the wound cell for imaging, to obtain an image of the corner region including the
cathode electrode plate and the anode electrode plate at N layers of the corner region
of the wound cell.
[0077] In the inspection scheme for wound cell provided in this embodiment of this application,
the image of the corner region can be quickly and accurately obtained by using a micro-focus
X-ray source to emit X-rays that penetrate the corner region of the wound cell for
imaging, so that the amounts of misalignment in the wound cell can be quickly and
accurately determined, improving the inspection efficiency and ensuring the quality
of cell products.
[0078] Optionally, in this embodiment of this application, N is a total number of layers
of the cathode electrode plate and anode electrode plate of the wound cell in the
corner region.
[0079] In the inspection scheme for wound cell provided in this embodiment of this application,
with the image of the corner region including all layers of the cathode electrode
plate and anode electrode plate obtained by using the micro-focus X-ray source to
emit X-rays that penetrate the corner region of the wound cell for imaging, amounts
of misalignment can be accurately measured for the cathode electrode plate and the
anode electrode plates of the wound cell that are adjacent at all layers, thereby
preventing cell products with a nonconforming amount of misalignment from entering
the market and ensuring the quality of cell products.
[0080] FIG. 5 is a schematic flowchart of an inspection method for wound cell according
to an embodiment of this application. As shown in FIG. 5, the inspection method for
wound cell may include some or all of the following contents.
[0081] 510. Obtain an image of a corner region of a wound cell.
[0082] Descriptions about step 510 are similar to the relevant descriptions in step 210
and for the image of the corner region above, and details are not repeated herein
in this application.
[0083] 520. Determine first endpoints on a first plane for a cathode electrode plate at
each of N layers of the corner region and second endpoints on the first plane for
an anode electrode plate at each of the N layers in the image of the corner region.
[0084] The first plane is the plane that the winding axis is located on and that is perpendicular
to the direction of the X-rays.
[0085] Due to different thicknesses at different positions of the wound cell and different
materials of the cathode and anode, different positions in the image of the corner
region imaged after X-ray penetration are different in grayscale. In other words,
in the image of the corner region, the cathode electrode plate at each of the N layers
of the corner region on the first plane and the anode electrode plate at each of the
N layers on the first plane are greatly different in grayscale from other regions,
which is easy to differentiate and identify.
[0086] Therefore, the cathode electrode plate at each of the N layers of the corner region
on the first plane and the anode electrode plate at each of the N layers of the corner
region on the first plane in the image of the corner region may be used to determine
endpoints on the first plane for the cathode electrode plate and the anode electrode
plate at each layer, helping determine the amount of misalignment based on the endpoints
for the cathode electrode plate and the endpoints for the anode electrode plate.
[0087] It should be understood that in the case of the first plane being a plane that the
winding axis is located on and that is perpendicular to the direction of the X-rays,
the wound cell being on the first plane means being within an allowable range of error
rather than strictly on the first plane, and perpendicular means being perpendicular
with an allowable range of error rather than being strictly perpendicular.
[0088] 530. Determine, based on the first endpoints and the second endpoints, amounts of
misalignment between the cathode electrode plate and the anode electrode plate that
are adjacent in the wound cell.
[0089] Optionally, in this embodiment of this application, a distance between two endpoints
can be determined based on coordinates of the first endpoints and the second endpoints
so that amounts of misalignment between the cathode electrode plate and the anode
electrode plate that are adjacent are determined.
[0090] In the inspection scheme for wound cell provided in this embodiment of this application,
when the X-ray penetrates the corner region for imaging, the grayscale of the anode
electrode plate and the cathode electrode plate in the two-dimensional image of the
corner region on the first plane that the winding axis is located on and that is perpendicular
to the ray direction is quite different from that in other regions, which is easy
to identify and differentiate. Therefore, with the endpoints on the first plane for
layers of the cathode electrode plate and anode electrode plate in the wound cell,
the amounts of misalignment between the cathode electrode plate and the anode electrode
plate that are adjacent can be more clearly and accurately determined.
[0091] Optionally, in this embodiment of this application, in determining first endpoints
on the first plane for the cathode electrode plate at each of the N layers of the
corner region and second endpoints on the first plane for the anode electrode plate
at each of the N layers in the image of the corner region, a neural network model
can be used to determine the first endpoints and the second endpoints, where the neural
network model is obtained by training using a plurality of marked wound cell images,
and the plurality of marked wound cell images include information about marked endpoints
on the first plane for the cathode electrode plate and marked endpoints on the first
plane for the anode electrode plate.
[0092] In this embodiment, marked wound cell images such as marked images of a corner region
can be used to train the neural network model so that the neural network model is
used to identify endpoints for the cathode electrode plate and the anode electrode
plate in the image of the corner region.
[0093] In the inspection scheme for wound cell provided in this embodiment of this application,
the wound cell images are marked, and then the neural network model trained using
the marked wound cell images is used so that the endpoints for the cathode electrode
plate and the anode electrode plate can be accurately and quickly identified, improving
the inspection efficiency.
[0094] FIG. 6 is a schematic flowchart of an inspection method for wound cell according
to an embodiment of this application. As shown in FIG. 6, the inspection method for
wound cell may include some or all of the following contents.
[0095] 610. Obtain an image of a corner region of a wound cell.
[0096] Descriptions about step 610 are similar to the relevant descriptions in step 210
and for the image of the corner region above, and details are not repeated herein
in this application.
[0097] 620. Perform image enhancement on the image of the corner region.
[0098] In this embodiment, the visual effect of the image can be improved by selectively
highlighting features of interest in the image of the corner region or suppressing
some unwanted features in the image.
[0099] FIG. 7 is an image of a corner region after image enhancement according to an embodiment
of this application. As shown in FIG. 7, the image of the corner region after image
enhancement can more clearly display pixels on a first plane for a cathode electrode
plate at each of N layers of the corner region and pixels on the first plane for the
anode electrode plate at each of the N layers in the image of the corner region, thereby
improving the visual effect of the image.
[0100] In the inspection scheme for wound cell provided in this embodiment of this application,
the visual effect of the image can be improved by performing enhancement on the image
of the corner region, for example, by increasing image definition, so that the amount
of misalignment can be accurately measured and manual re-inspection can be conveniently
performed by operators on the production line.
[0101] Optionally, in this embodiment of this application, the contrast of the image of
the corner region can be increased to highlight pixels on the first plane for the
cathode electrode plate at each of the N layers and pixels on the first plane for
the anode electrode plate at each of the N layers, achieving image enhancement on
the image of the corner region.
[0102] In the inspection scheme for wound cell provided in this embodiment of this application,
the pixels on the first plane for layers of the cathode electrode plate and anode
electrode plate can be highlighted by increasing the contrast of the image of the
corner region, thereby facilitating accurate identification of the endpoints for layers
of the cathode electrode plate and anode electrode plate and improving the accuracy
in measuring amounts of misalignment.
[0103] Optionally, in this embodiment of this application, a first grayscale value can be
used to replace a grayscale value for a first region and a second grayscale value
is used to replace grayscale values for other regions in the image of the corner region
except the first region, achieving image enhancement on the image of the corner region.
[0104] The first region includes a region in which pixels on the first plane for the anode
electrode plate at each of N layers of the corner region and pixels on the first plane
for the cathode electrode plate at each of the N layers in the image of the corner
region are located.
[0105] Optionally, in this embodiment of this application, the first region may further
include a region in which pixels for the ceramic layer shown in FIG. 7 are located.
[0106] In the image of the corner region shown in FIG. 7, a ceramic layer is further provided
on one edge in the width direction of the wound cell, and the ceramic layer may be
connected to a cathode electrode plate and a cathode tab. Optionally, the material
of the ceramic layer may be AT9 or AT 11.
[0107] Optionally, in this embodiment of this application, the first region is a region
in which a grayscale range formed by the grayscale values on the first plane for the
anode electrode plate at each of the N layers and the grayscale values on the first
plane for the cathode electrode plate at each of the N layers is located. For example,
if a grayscale range formed by the grayscale values on the first plane for the anode
electrode plate at each of the N layers and the grayscale values on the first plane
for the cathode electrode plate at each of the N layers is [a, b], the first region
is a region in the image of the corner region in which grayscale values are within
[a, b].
[0108] In the inspection scheme for wound cell provided in this embodiment of this application,
the first grayscale value can be used to replace the grayscale values on the first
plane for layers of the anode electrode plate and the cathode electrode plate, and
the second grayscale value can be used to replace grayscale values for other regions
in the image of the corner region. In this way, the images of the cathode electrode
plate and the anode electrode plate in the corner region on the first plane can be
clearly highlighted in the enhanced image of the corner region, which is convenient
for identifying the first endpoints for the cathode electrode plate and the second
endpoints for the anode electrode plate so that the amounts of misalignment are accurately
measured.
[0109] 630. Determine, based on the image of the corner region, amounts of misalignment
between a cathode electrode plate and an anode electrode plate that are adjacent in
the wound cell.
[0110] For relevant descriptions of determining, based on the image of the corner region,
amounts of misalignment between a cathode electrode plate and an anode electrode plate
that are adjacent in the wound cell, reference may be made to step 220 and/or steps
520 and 530. Details are not repeated herein in this application.
[0111] In the inspection scheme for wound cell provided in this embodiment of this application,
amounts of misalignment between the cathode electrode plate and the anode electrode
plate that are adjacent at more layers in the wound cell can be accurately measured.
For example, amounts of misalignment between the cathode electrode plate and the anode
electrode plate at all layers in a wound cell with 45 layers or more can be accurately
measured, which is conducive to ensuring the quality and safety of cell products.
[0112] FIG. 8 is a schematic flowchart of an inspection method for wound cell according
to an embodiment of this application. As shown in FIG. 8, the inspection method for
wound cell may include some or all of the following contents.
[0113] 810. Obtain a plurality of initial image frames of a corner region continuously acquired.
[0114] Optionally, in this embodiment of this application, the initial image of the corner
region includes an image of a cathode electrode plate at N layers of the corner region
of the wound cell and an anode electrode plate at the N layers. The initial image
of the corner region is obtained by using a micro-focus X-ray source to emit X-rays
that penetrate the corner region for imaging, and a direction of the X-rays is perpendicular
to a direction of a winding axis of the wound cell, where N is a total number of layers
of the cathode electrode plate and anode electrode plate of the wound cell in the
corner region, N being a positive integer.
[0115] 820. Perform average denoising on the plurality of initial image frames of the corner
region to obtain an image of the corner region.
[0116] Optionally, in this embodiment of this application, average denoising may be performed
on the plurality of initial image frames of the corner region to obtain an image of
the corner region after average denoising.
[0117] In the inspection scheme for wound cell provided in this embodiment of this application,
parallel denoising is performed on the plurality of initial image frames of the corner
region continuously acquired so that noises caused by an imaging device and external
environments are suppressed, improving the quality of the image of the corner region.
[0118] Optionally, in this embodiment of this application, a control power of the micro-focus
X-ray source is positively related to the thickness of the corner region.
[0119] In other words, in this embodiment, if the corner region of the wound cell is relatively
thick, the control power of the micro-focus X-ray source can be increased, enabling
X-rays to penetrate the corner region of the wound cell, so that the image of the
corner region of the wound cell is obtained.
[0120] In the inspection scheme for wound cell provided in this embodiment of this application,
corner regions with different thicknesses can be imaged by adjusting the control power
of the micro-focus X-ray source. A greater control power of the micro-focus X-ray
source can be used for a thicker corner region of the wound cell, so that the image
of cathode electrode plates and anode electrode plates in corner regions with different
thicknesses can be obtained by adjusting the control power of the micro-focus X-ray
source.
[0121] Optionally, in this embodiment of this application, the corner region includes four
corner regions of the wound cell.
[0122] In other words, in measuring an amount of misalignment in the wound cell, the four
corner regions of the wound cell can be imaged separately, and amounts of misalignment
between the cathode electrode plate and the anode electrode plate that are adjacent
in each corner region of the wound cell can be measured based on the images of the
four corner regions of the wound cell.
[0123] In the inspection scheme for wound cell provided in this application, the accuracy
in measuring amounts of misalignment in the wound cell can be improved by measuring
amounts of misalignment between the cathode electrode plate and the anode electrode
plate that are adjacent in the images of the four corner regions of the wound cell.
[0124] 830. Perform image enhancement on the image of the corner region.
[0125] 840. Determine first endpoints on a first plane for a cathode electrode plate at
each of N layers of the corner region and second endpoints on the first plane for
an anode electrode plate at each of the N layers in the image of the corner region.
[0126] 850. Determine, based on the first endpoints and the second endpoints, amounts of
misalignment between the cathode electrode plate and the anode electrode plate that
are adjacent in the wound cell.
[0127] For descriptions about steps 830 to 850, reference may be made to relevant descriptions
in steps 620, 520, and 530. Details are not repeated herein in this application.
[0128] 860. Determine a minimum amount of misalignment between the cathode electrode plate
and the anode electrode plate that are adjacent in the wound cell.
[0129] 870a. Determine that the wound cell is a good product under the condition that the
minimum amount of misalignment is within a preset range.
[0130] 870b. Determine that the wound cell is a defective product under the condition that
the minimum amount of misalignment is beyond a preset range.
[0131] In other words, in this embodiment, the wound cell can be determined as a good product
if the amount of misalignment between the cathode electrode plate and the anode electrode
plate that are adjacent is within a specified range; and the wound cell can be determined
as a defective product if the amount of misalignment between the cathode electrode
plate and the anode electrode plate that are adjacent is beyond a specified range.
[0132] In the inspection scheme for wound cell provided in this embodiment of this application,
the inspection efficiency can be improved by using a minimum one of all amounts of
misalignment to determine whether the wound cell is a good product.
[0133] It should be understood that, in the embodiments of this application, sequence numbers
of the foregoing processes do not mean execution sequences. The execution sequences
of the processes should be determined according to functions and internal logic of
the processes, and should not be construed as any limitation on the implementation
processes of the embodiments of this application.
[0134] The foregoing has described in detail the inspection method for wound cell in this
embodiment of this application, the following will describe in detail an inspection
apparatus for wound cell in embodiments of this application with reference to FIG.
9 and FIG. 10, and the technical features described in the method embodiments are
applicable to the following apparatus embodiments.
[0135] FIG. 9 is a schematic block diagram of an inspection apparatus 900 for wound cell
according to an embodiment of this application. As shown in FIG. 9, the inspection
apparatus includes some or all of the following contents.
[0136] An obtaining unit 910 is configured to obtain an image of a corner region of the
wound cell, where the image of the corner region includes an image of a cathode electrode
plate at N layers of the corner region of the wound cell and an anode electrode plate
at the N layers, N being a positive integer.
[0137] A control unit 920 is configured to determine, based on the image of the corner region,
amounts of misalignment between the cathode electrode plate and the anode electrode
plate that are adjacent in the wound cell.
[0138] Optionally, in this embodiment of this application, the image of the corner region
is obtained by using a micro-focus X-ray source to emit X-rays that penetrate the
corner region for imaging, where a direction of the X-rays is perpendicular to a direction
of a winding axis of the wound cell.
[0139] Optionally, in this embodiment of this application, N is a total number of layers
of the cathode electrode plate and anode electrode plate of the wound cell in the
corner region.
[0140] Optionally, in this embodiment of this application, the control unit is configured
to: determine first endpoints on a first plane for the cathode electrode plate at
each of the N layers of the corner region and second endpoints on the first plane
for the anode electrode plate at each of the N layers in the image of the corner region,
where the first plane is a plane that the winding axis is located on and that is perpendicular
to the direction of the X-rays; and determine, based on the first endpoints and the
second endpoints, amounts of misalignment between the cathode electrode plate and
the anode electrode plate that are adjacent in the wound cell.
[0141] Optionally, in this embodiment of this application, the control unit is configured
to use a neural network model to determine the first endpoints and the second endpoints,
where the neural network model is obtained by training using a plurality of marked
wound cell images, and the plurality of marked wound cell images include information
about marked endpoints on the first plane for the cathode electrode plate and marked
endpoints on the first plane for the marked anode electrode plate.
[0142] Optionally, in this embodiment of this application, the control unit is further configured
to perform image enhancement on the image of the corner region.
[0143] Optionally, in this embodiment of this application, the control unit is configured
to increase contrast of the image of the corner region to highlight pixels on the
first plane for the cathode electrode plate at each of the N layers and pixels on
the first plane for the anode electrode plate at each of the N layers.
[0144] Optionally, in this embodiment of this application, the control unit is configured
to use a first grayscale value to replace a grayscale value for a first region and
use a second grayscale value to replace grayscale values for other regions in the
image of the corner region except the first region, where the first region includes
a region in which pixels on the first plane for the anode electrode plate at each
of the N layers and pixels on the first plane for the cathode electrode plate at each
of the N layers are located.
[0145] Optionally, in this embodiment of this application, the obtaining unit is configured
to: obtain a plurality of initial image frames of the corner region continuously acquired;
and perform average denoising on the plurality of initial image frames of the corner
region to obtain the image of the corner region.
[0146] Optionally, in this embodiment of this application, a control power for a focal spot
size of the micro-focus X-ray is positively related to the thickness of the corner
region.
[0147] Optionally, in this embodiment of this application, the corner region includes four
corner regions of the wound cell.
[0148] Optionally, in this embodiment of this application, the control unit is further configured
to: determine a minimum amount of misalignment between the cathode electrode plate
and the anode electrode plate that are adjacent in the wound cell; determine that
the wound cell is a good product under the condition that the minimum amount of misalignment
is within a preset range; and determine that the wound cell is a defective product
under the condition that the minimum amount of misalignment is beyond the preset range.
[0149] It should be understood that the foregoing and other operations and/or operations
of the modules in the inspection apparatus 900 are used to implement corresponding
processes in the foregoing inspection method for wound cell. For brevity, details
are not repeated herein.
[0150] FIG. 10 is a schematic block diagram of an inspection apparatus 1000 for wound cell
according to an embodiment of this application. As shown in FIG. 10, the inspection
apparatus 1000 includes a processor 1010 and a memory 1020, where the memory 1020
is configured to store instructions, and the processor 1010 is configured to read
the instructions and perform the methods in the foregoing various embodiments of this
application based on the instructions.
[0151] The memory 1020 may be a separate device independent of the processor 1010, or may
be integrated into the processor 1010.
[0152] Optionally, as shown in FIG. 10, the inspection apparatus 1000 may further include
a transceiver 1030, and the processor 1010 may control the transceiver 1030 to communicate
with other devices. Specifically, the transceiver 1030 may transmit information or
data to other devices, or receive information or data transmitted from other devices.
[0153] It should be understood that the processor in this embodiment of this application
may be an integrated circuit chip with a signal processing capability. In an implementation
process, steps in the foregoing method embodiments can be implemented by using a hardware
integrated logic circuit in the processor, or by using instructions in a form of software.
Alternatively, the processor may be a general purpose processor, a digital signal
processor (DSP), an ASIC, a FPGA or other programmable logic devices, a discrete gate
or a transistor logic device, or a discrete hardware component, and may implement
or execute methods, steps, and logical block diagrams disclosed in the embodiments
of this application. The general-purpose processor may be a microprocessor or any
regular processor. The steps of the methods disclosed with reference to the embodiments
of the application may be directly implemented by a hardware decoding processor, or
may be implemented by a combination of hardware and a software module in a decoding
processor. The software module may be located in a storage medium mature in the art,
such as a random access memory, a flash memory, a read-only memory, a programmable
read-only memory or electrically erasable programmable memory, or a register. The
storage medium is located in the memory, and the processor reads information in the
memory and completes the steps in the foregoing methods in combination with hardware
of the processor.
[0154] It may be understood that the memory in the embodiments of this application may be
a volatile memory or a nonvolatile memory, or may include a volatile memory and a
nonvolatile memory. The non-volatile memory may be a read-only memory (ROM), a programmable
read-only memory (PROM), an erasable programmable read-only memory (EPROM), an electrically
erasable programmable read-only memory (EEPROM), or a flash memory. The volatile memory
may be a random access memory (RAM) and is used as an external cache. By way of example
but not restrictive description, many forms of RAMs are available, for example, a
static random access memory (SRAM), a dynamic random access memory (DRAM), a synchronous
dynamic random access memory (SDRAM), a double data rate synchronous dynamic random
access memory (DDR SDRAM), an enhanced synchronous dynamic random access memory (ESDRAM),
a synchlink dynamic random access memory (SLDRAM), and a direct rambus random access
memory (DR RAM). It should be noted that the memory of the systems and methods described
in this specification includes but is not limited to these and any other proper types
of memories.
[0155] An embodiment of this application further provides a computer-readable storage medium
for storing a computer program.
[0156] Optionally, the computer-readable storage medium may be applied to the inspection
apparatus for wound cell in the embodiments of this application, and when the computer
program is run on a computer, the computer is enabled to perform corresponding processes
implemented by a control apparatus in various methods in the embodiments of this application.
For brevity, details are not repeated herein.
[0157] An embodiment of this application further provides a computer program product including
computer program instructions.
[0158] Optionally, the computer program product may be applied to the inspection apparatus
for wound cell in the embodiments of this application, and when the computer program
instructions are run on a computer, the computer is enabled to perform corresponding
processes implemented by the inspection apparatus for wound cell in various methods
in the embodiments of this application. For brevity, details are not repeated herein.
[0159] An embodiment of this application further provides a computer program.
[0160] Optionally, the computer program may be applied to the inspection apparatus for wound
cell in the embodiments of this application, and when the computer program is run
on a computer, the computer is enabled to perform corresponding processes implemented
by the inspection apparatus for wound cell in various methods in the embodiments of
this application. For brevity, details are not repeated herein.
[0161] Persons of ordinary skill in the art may realize that units and algorithm steps of
various examples described with reference to the embodiments disclosed in this specification
can be implemented by using electronic hardware or a combination of computer software
and electronic hardware. Whether the functions are performed by hardware or software
depends on particular applications and design constraints of the technical solutions.
Persons skilled in the art may use different methods to implement the described functions
for each particular application, but it should not be considered that the implementation
goes beyond the scope of this application.
[0162] It may be clearly understood by persons skilled in the art that, for the purpose
of convenient and brief description, for a detailed working process of the foregoing
system, apparatus, and unit, reference may be made to a corresponding process in the
foregoing method embodiments, and details are not repeated herein.
[0163] In the several embodiments provided in this application, it should be understood
that the disclosed system, apparatus, and method may be implemented in other manners.
For example, the described apparatus embodiments are merely examples. For example,
division into units is merely logical function division and may be other division
during actual implementation. For example, a plurality of units or components may
be combined or integrated into another system, or some features may be ignored or
not performed. In addition, the displayed or discussed mutual couplings or direct
couplings or communications connections may be implemented by using some interfaces.
The indirect couplings or communications connections between the apparatuses, modules,
or units may be implemented in electronic, mechanical, or other forms.
[0164] The units described as separate parts may or may not be physically separate, and
parts displayed as units may or may not be physical units, may be located in one position,
or may be distributed on a plurality of network units. Some or all of the units may
be selected depending on actual requirements to achieve the objectives of the solutions
in the embodiments.
[0165] In addition, function units in the embodiments of this application may be integrated
into one processing unit, or each of the units may exist alone physically, or two
or more units may be integrated into one unit.
[0166] When the functions are implemented in a form of a software functional unit and sold
or used as an independent product, the functions may be stored in a computer-readable
storage medium. Based on such an understanding, the technical solutions of the application
substantially or parts making contributions to the conventional art or part of the
technical solutions may be embodied in a form of a software product. The computer
software product is stored in a storage medium and includes several instructions for
instructing a computer device (which may be a personal computer, a server, a network
device, or the like) to perform all or some of the steps of the methods described
in the embodiments of this application. The foregoing storage medium includes: any
medium that can store program code, such as a USB flash drive, a removable hard disk,
a ROM, a RAM, a magnetic disk, or an optical disc.
[0167] The foregoing descriptions are only specific implementations of this application,
but are not intended to limit the protection scope of this application. Any variation
or replacement readily figured out by persons skilled in the art within the technical
scope disclosed in this application shall fall within the protection scope of this
application. Therefore, the protection scope of this application shall be subject
to the protection scope of the claims.
1. An inspection method for wound cell,
characterized by comprising:
obtaining an image of a corner region of the wound cell, wherein the image of the
corner region comprises an image of a cathode electrode plate at N layers of the corner
region of the wound cell and an anode electrode plate at the N layers, N being a positive
integer; and
determining, based on the image of the corner region, amounts of misalignment between
the cathode electrode plate and the anode electrode plate that are adjacent in the
wound cell.
2. The inspection method according to claim 1, characterized in that the image of the corner region is obtained by using a micro-focus X-ray source to
emit X-rays that penetrate the corner region for imaging, wherein a direction of the
X-rays is perpendicular to a direction of a winding axis of the wound cell.
3. The inspection method according to claim 1 or 2, characterized in that N is a total number of layers of the cathode electrode plate and anode electrode
plate in the corner region of the wound cell.
4. The inspection method according to any one of claims 1 to 3,
characterized in that the determining, based on the image of the corner region, amounts of misalignment
between the cathode electrode plate and the anode electrode plate that are adjacent
in the wound cell comprises:
determining first endpoints on a first plane for the cathode electrode plate at each
of the N layers of the corner region and second endpoints on the first plane for the
anode electrode plate at each of the N layers in the image of the corner region, wherein
the first plane is a plane that the winding axis is located on and that is perpendicular
to the direction of the X-rays; and
determining, based on the first endpoints and the second endpoints, amounts of misalignment
between the cathode electrode plate and the anode electrode plate that are adjacent
in the wound cell.
5. The inspection method according to claim 4, characterized in that the determining first endpoints on a first plane for the cathode electrode plate
at each of the N layers of the corner region and second endpoints on the first plane
for the anode electrode plate at each of the N layers in the image of the corner region
comprises:
using a neural network model to determine the first endpoints and the second endpoints,
wherein the neural network model is obtained by training using a plurality of marked
wound cell images, and the plurality of marked wound cell images comprise information
about marked endpoints on the first plane for the cathode electrode plate and marked
endpoints on the first plane for the anode electrode plate.
6. The inspection method according to any one of claims 1 to 5, characterized in that before the determining, based on the image of corner region, amounts of misalignment
between the cathode electrode plate and the anode electrode plate that are adjacent
in the wound cell, the method further comprises:
performing image enhancement on the image of the corner region.
7. The inspection method according to claim 6, characterized in that the performing image enhancement on the image of the corner region comprises:
increasing contrast of the image of the corner region to highlight pixels on the first
plane for the cathode electrode plate at each of the N layers and pixels on the first
plane for the anode electrode plate at each of the N layers.
8. The inspection method according to claim 6, characterized in that the performing image enhancement on the image of the corner region further comprises:
using a first grayscale value to replace a grayscale value for a first region and
using a second grayscale value to replace grayscale values for other regions in the
image of the corner region except the first region, wherein the first region comprises
a region in which pixels on the first plane for the anode electrode plate at each
of the N layers and pixels on the first plane for the cathode electrode plate at each
of the N layers are located.
9. The inspection method according to any one of claims 1 to 8,
characterized in that before the obtaining an image of a corner region of the wound cell, the method further
comprises:
obtaining a plurality of initial image frames of the corner region continuously acquired;
and
performing average denoising on the plurality of initial image frames of the corner
region to obtain the image of the corner region.
10. The inspection method according to any one of claims 2 to 9, characterized in that a control power of the micro-focus X-ray source is positively related to the thickness
of the corner region.
11. The inspection method according to any one of claims 1 to 10, characterized in that the corner region comprises four corner regions of the wound cell.
12. The inspection method according to any one of claims 1 to 11,
characterized in that the method further comprises:
determining a minimum amount of misalignment between the cathode electrode plate and
the anode electrode plate that are adjacent in the wound cell;
determining that the wound cell is a good product under the condition that the minimum
amount of misalignment is within a preset range; and
determining that the wound cell is a defective product under the condition that the
minimum amount of misalignment is beyond the preset range.
13. An inspection apparatus for wound cell,
characterized by comprising:
an obtaining unit, configured to obtain an image of a corner region of the wound cell,
wherein the image of the corner region comprises an image of a cathode electrode plate
at N layers of the corner region of the wound cell and an anode electrode plate at
the N layers, N being a positive integer; and
a control unit, configured to determine, based on the image of the corner region,
amounts of misalignment between the cathode electrode plate and the anode electrode
plate that are adjacent in the wound cell.
14. The inspection apparatus according to claim 13, characterized in that the image of the corner region is obtained by using a micro-focus X-ray source to
emit X-rays that penetrate the corner region for imaging, wherein a direction of the
X-rays is perpendicular to a direction of a winding axis of the wound cell.
15. The inspection apparatus according to claim 13 or 14, characterized in that N is a total number of layers of the cathode electrode plate and anode electrode
plate in the corner region of the wound cell.
16. The inspection apparatus according to any one of claims 13 to 15,
characterized in that the control unit is configured to:
determine first endpoints on a first plane for the cathode electrode plate at each
of the N layers of the corner region and second endpoints on the first plane for the
anode electrode plate at each of the N layers in the image of the corner region, wherein
the first plane is a plane that the winding axis is located on and that is perpendicular
to the direction of the X-rays; and
determine, based on the first endpoints and the second endpoints, amounts of misalignment
between the cathode electrode plate and the anode electrode plate that are adjacent
in the wound cell.
17. The inspection apparatus according to claim 16, characterized in that the control unit is configured to:
use a neural network model to determine the first endpoints and the second endpoints,
wherein the neural network model is obtained by training using a plurality of marked
wound cell images, and the plurality of marked wound cell images comprise information
about marked endpoints on the first plane for the cathode electrode plate and marked
endpoints on the first plane for the marked anode electrode plate.
18. The inspection apparatus according to any one of claims 13 to 17, characterized in that the control unit is further configured to:
perform image enhancement on the image of the corner region.
19. The inspection apparatus according to claim 18, characterized in that the control unit is configured to:
increase contrast of the image of the corner region to highlight pixels on the first
plane for the cathode electrode plate at each of the N layers and pixels on the first
plane for the anode electrode plate at each of the N layers.
20. The inspection apparatus according to claim 18, characterized in that the control unit is configured to:
use a first grayscale value to replace a grayscale value for a first region and use
a second grayscale value to replace grayscale values for other regions in the image
of the corner region except the first region, wherein the first region comprises a
region in which pixels on the first plane for the anode electrode plate at each of
the N layers and pixels on the first plane for the cathode electrode plate at each
of the N layers are located.
21. The inspection apparatus according to any one of claims 13 to 20,
characterized in that the obtaining unit is configured to:
obtain a plurality of initial image frames of the corner region continuously acquired;
and
perform average denoising on the plurality of initial image frames of the corner region
to obtain the image of the corner region.
22. The inspection apparatus according to any one of claims 14 to 21, characterized in that a control power of the micro-focus X-ray source is positively related to the thickness
of the corner region.
23. The inspection apparatus according to any one of claims 13 to 22, characterized in that the corner region comprises four corner regions of the wound cell.
24. The inspection apparatus according to any one of claims 13 to 23,
characterized in that the control unit is further configured to:
determine a minimum amount of misalignment between the cathode electrode plate and
the anode electrode plate that are adjacent in the wound cell;
determine that the wound cell is a good product under the condition that the minimum
amount of misalignment is within a preset range; and
determine that the wound cell is a defective product under the condition that the
minimum amount of misalignment is beyond the preset range.
25. An inspection apparatus for wound cell, characterized in that the inspection apparatus comprises a memory and a processor, wherein the memory is
configured to store instructions, and the processor is configured to read the instructions
and perform, according to the instructions, the method according to any one of claims
1 to 12.
26. A computer-readable storage medium, configured to store a computer program, characterized in that the computer program enables a computer to perform the method according to any one
of claims 1 to 12.
27. A computer program product, comprising computer program instructions, characterized in that the computer program instructions enable a computer to perform the method according
to any one of claims 1 to 12.